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腺病毒衣壳中的一个无规则区域与人类α防御素 5 的中和作用有关。

An intrinsically disordered region of the adenovirus capsid is implicated in neutralization by human alpha defensin 5.

机构信息

Department of Pharmacology and Cleveland Center for Membrane and Structural Biology, Case Western Reserve University, Cleveland, Ohio, USA.

出版信息

PLoS One. 2013 Apr 19;8(4):e61571. doi: 10.1371/journal.pone.0061571. Print 2013.

Abstract

Human α-defensins are proteins of the innate immune system that suppress viral and bacterial infections by multiple mechanisms including membrane disruption. For viruses that lack envelopes, such as human adenovirus (HAdV), other, less well defined, mechanisms must be involved. A previous structural study on the interaction of an α-defensin, human α-defensin 5 (HD5), with HAdV led to a proposed mechanism in which HD5 stabilizes the vertex region of the capsid and blocks uncoating steps required for infectivity. Studies with virus chimeras comprised of capsid proteins from sensitive and resistant serotypes supported this model. To further characterize the critical binding site, we determined subnanometer resolution cryo-electron microscopy (cryoEM) structures of HD5 complexed with both neutralization-sensitive and -resistant HAdV chimeras. Models were built for the vertex regions of these chimeras with monomeric and dimeric forms of HD5 in various initial orientations. CryoEM guided molecular dynamics flexible fitting (MDFF) was used to restrain the majority of the vertex model in well-defined cryoEM density. The RGD-containing penton base loops of both the sensitive and resistant virus chimeras are predicted to be intrinsically disordered, and little cryoEM density is observed for them. In simulations these loops from the sensitive virus chimera, interact with HD5, bridge the penton base and fiber proteins, and provides significant stabilization with a three-fold increase in the intermolecular nonbonded interactions of the vertex complex. In the case of the resistant virus chimera, simulations revealed fewer bridging interactions and reduced stabilization by HD5. This study implicates a key dynamic region in mediating a stabilizing interaction between a viral capsid and a protein of the innate immune system with potent anti-viral activity.

摘要

人α-防御素是先天免疫系统的蛋白质,通过多种机制抑制病毒和细菌感染,包括破坏膜。对于缺乏包膜的病毒,如人类腺病毒(HAdV),必须涉及其他不太明确的机制。先前关于α-防御素,人α-防御素 5(HD5)与 HAdV 相互作用的结构研究提出了一种机制,其中 HD5 稳定衣壳的顶点区域并阻止感染性所需的脱壳步骤。使用由敏感和抗性血清型的衣壳蛋白组成的病毒嵌合体的研究支持了该模型。为了进一步表征关键结合位点,我们确定了与中和敏感和抗性 HAdV 嵌合体结合的 HD5 的亚纳米分辨率冷冻电镜(cryoEM)结构。对于这些嵌合体的顶点区域,构建了具有各种初始取向的单体和二聚体形式的 HD5 的模型。使用 cryoEM 引导的分子动力学柔性拟合(MDFF)来约束顶点模型的大部分区域,在明确的 cryoEM 密度中。敏感和抗性病毒嵌合体的 RGD 包含的五聚体基环都被预测为固有无序,并且很少观察到它们的 cryoEM 密度。在模拟中,来自敏感病毒嵌合体的这些环与 HD5 相互作用,桥接五聚体基和纤维蛋白,并通过增加三倍的顶点复合物的分子间非键相互作用提供显著的稳定性。在抗性病毒嵌合体的情况下,模拟显示出较少的桥接相互作用和 HD5 减少的稳定性。这项研究表明,在先天免疫系统的蛋白质与具有强大抗病毒活性的病毒衣壳之间的稳定相互作用中,存在一个关键的动态区域。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a1b9/3631211/4d6b0c89ceef/pone.0061571.g001.jpg

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